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Fast 3D surface defect detection with fringe projection

机译:用条纹投影快速3D表面缺陷检测

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Ensuring high quality standards at a competitive cost through rapid and accurate industrial inspection is a great challenge in the eld of intelligent manufacturing. Three-dimensional (3D) optical quality inspection technologies are gradually widely applied for surface defect detection of complex workpieces because of its non-contact, high-accuracy, digitization and automation. However, the contradiction between cost and eciency, dependence on additional position hardware, and compromised detection strategies remain the urgent obstacles to overcome. In this work, we propose a fast 3D surface defect inspection approach based on fringe projection pro-lometry (FPP) for complex objects without any auxiliary equipment for position and orientation control. Firstly, a multi-view 3D measurement based on geometric constraints is employed to acquire high-accuracy depth information from dierent perspectives. Then, a cycle-positioning-based registration scheme with the establishment of the pose-information-matched 3D standard digital model is proposed to realize rapid alignment of the measured point cloud and the standard model. Finally, a minimum 3D distance search method is driven by a dual-thread processing mechanism for simultaneous scanning and detection to quantify and locate 3D surface defects in real time. To validate the proposed inspection approach, a software that combines 3D imaging, point cloud registration, and surface defect calculation is developed to perform quality inspections on complicated objects. The experimental results show that our method can accurately detect the 3D surface defect of the workpiece through more economical hardware and more convenient means in real time, which is of great signicance to intelligent manufacturing.
机译:在通过快速,准确工业检验有竞争力的成本,确保高品质的标准是智能制造的场一个巨大的挑战。三维(3D)光学质量检查技术被逐渐广泛应用于表面缺陷检测,因为它的非接触式,高精度,数字化和自动化的复杂的工件。然而,成本和eciency,额外位置硬件的依赖,损害检测战略之间的矛盾仍然是迫切需要克服的障碍。在这项工作中,我们提出了一种基于条纹投影一个快速的3D表面缺陷检查方法PRO-lometry对复杂对象(FPP),而不进行位置和取向控制任何辅助设备。首先,基于几何约束的多视图三维测量被用来从dierent视角获取高精度的深度信息。然后,与建立的姿态信息匹配的3D标准的数字模型的基于周期的定位登记方案,提出了实现测量点群和标准模型的快速对准。最后,最小的3D距离搜索方法由双线程处理机构用于同时扫描和检测量化和实时定位的3D表面缺陷驱动。为了验证所提出的检查方法中,结合了3D成像,点云登记,和表面缺陷的计算被显影以在复杂的对象执行质量检查软件。实验结果表明,我们的方法可以准确地通过更经济的硬件和实时时间,这是很大的signicance到智能制造的更加方便的装置检测所述工件的三维表面缺陷。

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